Deep learning waveform anomaly detector for numerical relativity catalogs
Abstract
Numerical Relativity has been of fundamental importance for studying compact binary coalescence dynamics, waveform modelling, and eventually for gravitational waves observations. As the sensitivity of the detector network improves, more precise template modelling will be necessary to guarantee a more accurate estimation of astrophysical parameters. To help improve the accuracy of numerical relativity catalogs, we developed a deep learning model capable of detecting anomalous waveforms. We analyzed 1341 binary black hole simulations from the SXS catalog with various mass-ratios and spins, considering waveform dominant and higher modes. In the set of waveform analyzed, we found and categorised seven types of anomalies appearing in the coalescence phases.
- Publication:
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General Relativity and Gravitation
- Pub Date:
- February 2024
- DOI:
- 10.1007/s10714-024-03216-w
- arXiv:
- arXiv:2210.07299
- Bibcode:
- 2024GReGr..56...24P
- Keywords:
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- Gravitational waves;
- Deep learning;
- Numerical relativity;
- Anomaly detector;
- General Relativity and Quantum Cosmology
- E-Print:
- 15 pages, 16 figures